Dietary fiber food processing stirrer
By designing the screw frame and combining it with the eccentric roller, the effects or results achievable by the aforementioned technical means are realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2026-03-27
AI Technical Summary
Existing mixers have low mixing efficiency when blending dietary fiber with other ingredients, which affects the processing efficiency of dietary fiber foods.
The design employs a spiral frame I and a spiral frame II rotating in opposite directions, combined with an eccentric roller driving the material box to vibrate, thereby achieving uniform dispersion and multi-directional mixing of dietary fiber powder, forming a complex flow pattern to improve mixing efficiency.
It improves the uniformity and efficiency of mixing dietary fiber with other raw materials, ensures the consistency and stability of product composition, and avoids the localized high efficiency of mixers in existing technologies.
Smart Images

Figure CN224040603U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of dietary fiber food processing, more specifically to a dietary fiber food processing stirrer. BACKGROUND
[0002] Dietary fibers are widely sourced, such as cellulose, hemicellulose and the like extracted from plants, which are often mixed with other raw materials such as flour, starch, protein and the like during processing. Stirring can allow the dietary fibers to fully contact and uniformly distribute with other raw materials, ensuring the consistency and stability of product ingredients and avoiding the occurrence of local dietary fiber content being too high or too low. For example, in the production of dietary fiber bread, stirring can uniformly disperse dietary fiber powder in raw materials such as flour, so that the baked bread has uniform dietary fiber distribution, stable taste and quality. However, the existing stirrers have low efficiency in uniformly mixing dietary fibers with other raw materials, thereby affecting the processing efficiency of dietary fiber food. SUMMARY
[0003] To solve the above technical problems, the utility model provides a dietary fiber food processing stirrer which can efficiently mix dietary fibers with other raw materials.
[0004] The technical scheme adopted by the utility model to solve the above problems is as follows:
[0005] A dietary fiber food processing stirrer comprises a box body provided with a semicircular bottom at the lower end, a ring seat coaxial with the semicircular bottom is arranged on the side surface of the box body, a disc coaxially rotates on the side surface of the box body on the other side of the ring seat, a spiral frame I is fixed at the center of the disc, a plurality of spiral frames II rotate circumferentially on the disc, and a conical seat is installed in the ring seat.
[0006] A support shaft penetrates the box body, a hook frame is hung on the support shaft, and a bulk material box is fixed to the lower end of the hook frame.
[0007] An eccentric roller is eccentrically fixed on the support shaft and is limited in the hook frame.
[0008] The spiral frame II slides in contact with the inner wall of the semicircular bottom.
[0009] When the spiral frame I and the spiral frame II rotate, the spiral pushing directions are opposite.
[0010] An installation frame is fixed on the side surface of the box body where the disc is located, the disc rotates on the installation frame, a gear ring is fixed on the installation frame, and the gear ring is in meshing transmission connection with the plurality of spiral frames II.
[0011] The inner side surface of the conical seat extends inward around the periphery.
[0012] The left and right sides of the ring seat are symmetrically provided with limiting frames, the two limiting frames are slidably provided with hook plates, the conical seat is symmetrically provided with lock hole plates, the hook plates are hooked in the lock holes of the lock hole plates, and the conical seat is fixed.
[0013] The limiting frame and the hook plate are provided with a spring.
[0014] The upper end of the box is provided with a cover plate.
[0015] The utility model has the advantages of:
[0016] 1. The spiral frame I is used for spiral pushing towards the conical seat for stirring, and the multiple spiral frames II are used for spiral pushing away from the conical seat for stirring while rotating around the spiral frame I, so that the mixing efficiency of the dietary fiber and other raw materials is improved.
[0017] 2. The dietary fiber powder is added into the bulk material box, and is evenly scattered from the lower end of the bulk material box into the raw materials for stirring and mixing, so that the mixing efficiency of the dietary fiber and other raw materials is further improved. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 And Figure 2 It is the whole structure schematic diagram of dietary fiber food processing stirrer.
[0019] Figure 3 And Figure 4 It is the sectional structure schematic diagram of dietary fiber food processing stirrer.
[0020] Figure 5 It is the structure schematic diagram of the box and the semicircular bottom.
[0021] Figure 6 It is the structure schematic diagram of the disc and the spiral frame I.
[0022] Figure 7 It is the structure schematic diagram of the mounting frame, the spiral frame II and the gear ring.
[0023] Figure 8 It is the structure schematic diagram of the conical seat.
[0024] Figure 9 It is the structure schematic diagram of the hook plate.
[0025] Figure 10 It is the structure schematic diagram of the supporting shaft, the eccentric roller, the bulk material box and the hook frame.
[0026] In the drawing:
[0027] Box 1; semicircle bottom 2; ring seat 3; limiting frame 4; disc 5; spiral frame I 6; mounting frame 7; spiral frame II 8; tooth ring 9; cone seat 10; lock hole plate 11; hook plate 12; spring 13; support shaft 14; eccentric roller 15; bulk bin 16; hook frame 17; cover plate 18. DETAILED DESCRIPTION
[0028] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0029] As shown in the drawings, the dietary fiber food processing stirrer is described in detail as follows: Figures 1-10 A dietary fiber food processing stirrer, comprising a box 1 with a semicircle bottom 2 welded and fixed at the lower end, a ring seat 3 coaxial with the semicircle bottom 2 welded and fixed on the side of the box 1, a disc 5 coaxial and sealingly rotatable on the side of the box 1 opposite the ring seat 3, a spiral frame I 6 welded and fixed at the center of the disc 5, a plurality of spiral frames II 8 rotatably penetrating the disc 5 in the circumferential direction, and a cone seat 10 installed in the ring seat 3.
[0030] The cone seat 10 is located in the ring seat 3, forming a blockage of the ring seat 3. Then, the raw materials are added into the box 1. Then, the disc 5 is driven to rotate, and then the disc 5 drives the spiral frame I 6 to rotate. The rotating spiral frame I 6 can push the raw materials spirally towards the cone seat 10 for stirring. When the disc 5 rotates, the plurality of spiral frames II 8 can rotate around the spiral frame I 6, cooperating with the spiral frame I 6 to stir the raw materials. At the same time, the spiral frames II 8 are driven to rotate around their own axes, thereby cooperating with the spiral frame I 6 again to push the raw materials spirally towards the opposite direction of the cone seat 10 for stirring, thereby further improving the stirring efficiency.
[0031] When the spiral frame I 6 and the spiral frame II 8 rotate, the spiral pushing directions of the spiral frame I 6 and the spiral frame II 8 are opposite, which will cause the materials to be subjected to forces in opposite directions between them, thereby generating a complex flow pattern. The materials will not only move in the spiral direction, but also interpenetrate and collide between the two spiral frames. This helps to break the agglomerates of the materials, so that the materials of different components can be more fully contacted and mixed, thereby improving the uniformity of the mixing.
[0032] Moreover, since the spiral frame II 8 slides in contact with the inner wall of the semicircle bottom 2, the raw materials can be prevented from being retained on the inner wall of the semicircle bottom 2, thereby affecting the stirring effect.
[0033] Moreover, since the spiral frame II 8 slides in contact with the inner wall of the semicircle bottom 2, the raw materials can be prevented from being retained on the inner wall of the semicircle bottom 2, thereby affecting the stirring effect.
[0034] Further:
[0035] The box 1 is provided with a support shaft 14, which is parallel to the spiral frame I 6 and located above the spiral frame I 6. A hook frame 17 is hung on the support shaft 14. A bulk bin 16 is fixed to the lower end of the hook frame 17. The lower end of the bulk bin 16 is a mesh body.
[0036] During the mixing, the dietary fiber powder can be added to the bulk bin 16, and the remaining raw materials can be added to the box 1. The transmission of the spiral frame I 6 and the spiral frame II 8 rotates to stir the raw materials in the box 1. At the same time, the dietary fiber powder will gradually fall into the raw materials in the box 1 through the mesh body at the lower end of the bulk bin 16, thereby forming a falling mixing of the dietary fiber powder, and further improving the mixing efficiency of the dietary fiber and other raw materials.
[0037] Alternatively, part of the dietary fiber powder can be added to the box 1 at the same time as the remaining raw materials, and the remaining dietary fiber powder can be added to the bulk bin 16.
[0038] The hook frame 17 is hung on the support shaft 14 and automatically suspended on the support shaft 14 by the weight of the bulk bin 16, thereby facilitating the taking and placing of the bulk bin 16 on the support shaft 14.
[0039] Further:
[0040] The support shaft 14 is eccentrically fixed with an eccentric roller 15, which is limited in the hook frame 17.
[0041] The structure of the hook frame 17 is two open hook bodies symmetrically arranged on the left and right sides, and the openings are arranged towards the bulk bin 16. The upper ends of the two hook bodies are fixed with a horizontal plate. When the hook frame 17 is hung on the support shaft 14, the two hook bodies are hung on the support shaft 14 through the openings, and the eccentric roller 15 is located between the two hook bodies, thereby forming axial limiting between the two. When the first motor installed on the side of the box 1 drives the support shaft 14, the support shaft 14 drives the eccentric roller 15 to rotate eccentrically. The eccentric roller 15 will reciprocally push the horizontal plate upward during rotation, thereby making the bulk bin 16 reciprocally ascend and descend on the support shaft 14, forming vibration, so that the dietary fiber powder in the bulk bin 16 can quickly fall through the mesh body into the raw materials in the box 1 for mixing, thereby improving the falling efficiency of the dietary fiber powder in the bulk bin 16.
[0042] As shown in the drawings: Figures 6-7
[0043] The side of the box 1 where the disc 5 is located is fixed with a mounting frame 7. The disc 5 rotates on the mounting frame 7. A gear ring 9 is fixed on the mounting frame 7. The gear ring 9 is in meshing transmission connection with the plurality of spiral frames II 8.
[0044] The mounting frame 7 is detachably connected to the side of the box 1 by bolt fixing, and the gear ring 9 is fixedly connected to the mounting frame 7 by welding. A second motor is mounted on the mounting frame 7 to drive the disc 5, so that the disc 5 drives the spiral frame I 6 to rotate, and simultaneously drives the plurality of spiral frames II 8 to rotate around the center of the spiral frame I 6, and then the plurality of spiral frames II 8 are relatively moved with the gear ring 9, so that the plurality of spiral frames II 8 can rotate around their own axes, and thus the spiral frames II 8 can push the raw materials to move away from the conical seat 10 in a spiral manner, and cooperate with the spiral frame I 6 to stir.
[0045] Further:
[0046] The conical seat 10 is provided with a conical body extending towards the spiral frame I 6, and the inner side edge also extends inwardly. Thus, when the spiral frame I 6 pushes the raw materials to the conical seat 10 in a spiral manner, the raw materials will be penetrated by the central conical body and guided by the side of the conical body to move around, and then guided by the edge to return to the spiral frame I 6 and contact the spiral frame II 8, forming a circulating flow of the raw materials.
[0047] When the mixing is completed, the conical seat 10 can be pulled out of the ring seat 3, so that the mixed raw materials can be taken out at the port of the ring seat 3;
[0048] In order to mix and stir, the conical seat 10 can be stopped in the ring seat 3. Limiting frames 4 are symmetrically fixed to the left and right sides of the ring seat 3 by welding. A hook plate 12 is slidably arranged on each of the two limiting frames 4. A lock hole plate 11 is symmetrically welded on the conical seat 10. A lock hole is formed in the lock hole plate 11. The hook plate 12 is hooked in the lock hole of the lock hole plate 11, so that the conical seat 10 is fixed.
[0049] The hook plate 12 is provided with a hook head at the end away from the limiting frame 4. When the conical seat 10 is inserted into the ring seat 3 and the lock hole plate 11 is attached to the edge of the ring seat 3, the hook head of the hook plate 12 will penetrate the lock hole of the lock hole plate 11 and be hooked on the lock hole plate 11, so that the conical seat 10 is limited and fixed. When the conical seat 10 needs to be removed, the hook plate 12 can be pushed away from the center of the ring seat 3, so that the hook head is separated from the lock hole plate 11. At this time, the conical seat 10 can be pulled out, and then the raw materials can be quickly taken out.
[0050] Further:
[0051] A spring 13 is arranged between the limiting frame 4 and the hook plate 12. The spring 13 pushes the hook plate 12 to move away from the center of the ring seat 3, so that the hook head of the hook plate 12 can always be hooked on the lock hole plate 11 and cannot be automatically separated, thereby ensuring the stability of the installation of the conical seat 10.
[0052] Further:
[0053] The box 1 is covered by a cover plate 18 at the upper end to prevent dust from entering the box 1 during mixing and stirring.
[0054] Of course, the above description is not a limitation of the present use instruction, and the present utility model is not limited to the above examples. Changes, modifications, additions or replacements made by ordinary skilled in the art within the essential scope of the present utility model also belong to the protection scope of the present utility model.
Claims
1. A dietary fiber food processing blender characterized by: The box is provided with a semicircular bottom at the lower end, the side of the box is provided with a ring seat coaxial with the semicircular bottom, the side of the box on the other side of the ring seat is coaxially rotatable with a disc, the center of the disc is fixed with a spiral frame I, a plurality of spiral frames II are circumferentially rotatable on the disc, and a conical seat is mounted in the ring seat.
2. A dietary fiber food processing blender as defined in claim 1, wherein: A support shaft is penetrated through the box, a hook frame is hung on the support shaft, and a bulk box is fixed to the lower end of the hook frame.
3. A dietary fiber food processing blender as defined in claim 2, wherein: An eccentric roller is eccentrically fixed on the support shaft and is limited in the hook frame.
4. The dietary fiber food processing blender of claim 1, wherein: The spiral frame II slides in contact with the inner wall of the semicircular bottom.
5. The dietary fiber food processing blender of claim 1, wherein: When the spiral frame I and the spiral frame II rotate, the spiral pushing directions are opposite.
6. A dietary fiber food processing blender as defined in claim 5, wherein: An installation frame is fixed on the side of the box where the disc is located, the disc rotates on the installation frame, a gear ring is fixed on the installation frame, and the gear ring is in meshing transmission connection with the plurality of spiral frames II.
7. The dietary fiber food processing blender of claim 1, wherein: The inner side of the conical seat extends inward around the periphery.
8. The dietary fiber food processing blender of claim 1, wherein: Limiting frames are symmetrically arranged on the left and right sides of the ring seat, a hook plate is slidably arranged on the two limiting frames, lock hole plates are symmetrically arranged on the conical seat, the hook plates are hooked in the lock holes of the lock hole plates, and the conical seat is fixed.
9. A dietary fiber food processing blender as defined in claim 8, wherein: Springs are arranged between the limiting frames and the hook plates.
10. The dietary fiber food processing blender of claim 1, wherein: A cover plate is arranged on the upper end of the box.